Research on Pyrolysis Reactors for Bio-Oil Production from Agricultural Residues

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Abstract:

This paper provides an updated review on fast biomass pyrolysis reactors for bio-oil production in Shandong University of Technology. The technologies that were developed include horizontal entrained bed (HEB), fluidized bed (FB), down flow tuber reactor (DFTR), double concentric cylinder rotary reactor (DCCRR) and new type down flow tube reactor (N-DFTR). The patented DFTR, DCCRR and N-DFTR in China were developed based on the technology of direct heat exchange between hot solid heat carriers and biomass particles during both of the particles flowing in a mixed condition. The process and characteristics of each reactor were discussed in this topic. Contrasting to conventional reactors, the DFTR, DCCRR and N-DFTR are promising technologies due to their characteristics of high solid-liquid conversion rate, energy self-sufficient, easy operation and scaling up.

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Advanced Materials Research (Volumes 512-515)

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459-463

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May 2012

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© 2012 Trans Tech Publications Ltd. All Rights Reserved

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[1] Bridgwater A.V. Journal of Analytical and Applied Pyrolysis, Vol. 51 (1999), pp.3-22.

Google Scholar

[2] Bridgwater A.V., Peacock G.V.C. Renewable and Sustainable Energy Reviews, Vol. 4 (2000), pp.1-73.

Google Scholar

[3] Bridgwater A.V., Review of fast pyrolysis of biomass and product upgrading. Biomass and Bioenergy (2011).

DOI: 10.1016/j.biombioe.2011.01.048

Google Scholar

[4] Weiwen Wang, Feng Xiaoqin, Duan Jihai.Chinese Agricultural Science Bulletin ,Vol. 27, (2011), pp.355-361.(In Chinese)

Google Scholar

[5] Ronghou Liu, Yiliang Chen, Nan Lu, et al. Rural Energy, Issue. 5 (1999), pp.17-19. (In Chinese)

Google Scholar

[6] Ronghou Liu, Chunmei Zhang. Renewable Energy, Issue. 3 (2004), pp.11-14. (In Chinese)

Google Scholar

[7] Baojiang Xu, Nan Lu, JinShu Li, et al. Transactions of the Transactions of the Chinese Society of Agricultural Engineering. Vol.15 (1999), pp.177-181. (In Chinese)

Google Scholar

[8] Weiming Yi, Xueyuan Bai, Fang He, et al. Journal of Shandong Institute of Technology, Vol. 14 (2000), pp.9-12. (In Chinese)

Google Scholar

[9] Lihong Wang, Xueyuan Bai, Weiming Yi, et al.Transactions of the Chinese Society of Agricultural Engineering, Vol. 26 (2006), P. 108-111. (In Chinese)

Google Scholar

[10] Zhihe Li, Weiming Yi, Yongjun Li. Transactions of the Chinese Society for Agricultural Machinery, Vol. 38 (2007), pp.66-69. (In Chinese)

Google Scholar

[11] Zhihe Li, Xueyuan Bai, Weiming Yi. International Agricultural Engineering Journal, Vol. 20 (2011), pp.20-26. (In Chinese)

Google Scholar

[12] Chunmei Zhang, Ronghou Liu, Weiming Yi. Transactions of the Chinese Society for Agricultural Machinery, Vol. 40 (2009), pp.96-99. (In Chinese)

Google Scholar

[13] Shanjian Liu, Weiming Yi, Xueyuan Bai, et al. Transactions of the Chinese Society of Agricultural Engineering, Vol.25 (2009), pp.203-207. (In Chinese)

Google Scholar

[14] Weiming Yi, Shanjian Liu, Dongmei Bi, et al. Acta Energiae Solaris Sinica, Vol. 32 (2011), P. 25-28. (In Chinese)

Google Scholar

[15] Weiming Yi, Fang He, Yongjun Li, et al. China Patent 00109306.1. (2000). (In Chinese)

Google Scholar

[16] Xueyuan Bai, Weiming Yi, Yongjun Li, et al. China Patent 200710203207.9. (2007). (In Chinese)

Google Scholar

[17] Zhihe Li, Xueyuan Bai, Yongjun Li, et al. Transactions of the Chinese Society for Agricultural Machinery. Vol. 42 (2011), pp.116-119. (In Chinese)

Google Scholar

[18] Zhihe Li, Weiming Yi, Yongjun Li, Xueyuan Bai. China Patent 201110096813.1. (2011). (In Chinese)

DOI: 10.13031/2013.23323

Google Scholar